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Biomedical subjects

R M Robson

Publications and source records attributed to R M Robson.

At least 19 recordsLinked to original sources

Assembly of contractile and cytoskeletal elements in developing smooth muscle cells.

Specific developmental changes in smooth muscle were studied in gizzards obtained from 6-, 8-, 10-, 12-, 14-, 16-, 18-, and 20-day chick embryos and from 1- and 7-day posthatch chicks. Myoblasts were actively replicating in tissue from 6-day embryos. Cytoplasmic dense bodies (CDBs) first appeared at Embryonic Day 8 (E8) and were recognized as patches of increased electron density that consisted of actin filaments (AFs), intermediate filaments (IFs), and cross-connecting filaments (CCFs). Although the assembly of CDBs was not synchronized within a cell, the number, size, and electron density of CDBs increased as age increased. Membrane-associated dense bodies (MADBs) also could be recognized at E8. The number and size of MADBs increased as age increased, especially after E16. Filaments with the diameter of thick filaments first appeared at E12. Smooth muscle cells were able to divide as late as E20. The axial intermediate filament bundle (IFB) could first be identified in 1-day posthatch cells and became larger and more prominent in 7-day posthatch cells. Immunogold labeling of 1- and 7-day posthatch cells with anti-desmin showed that the IFB contained desmin IFs. The developmental events during this 23-day period were classified into seven stages, based primarily on the appearance and the growth of contractile and cytoskeletal elements. These stages are myoblast proliferation, dense body appearance, thick filament appearance, dense body growth, muscle cell replication, IFB appearance, and appearance of adult type cells. Smooth muscle cells in each stage express similar developmental characteristics. The mechanism of assembly of myofilaments and cytoskeletal elements in smooth muscle in vivo indicates that myofilaments (AFs and thick filaments) and filament attachment sites (CDBs and MADBs) are assembled before the axial IFB, a major cytoskeletal element.

Animals

Effect of porcine stress syndrome on the solubility and degradation of myofibrillar/cytoskeletal proteins.

This study examined the effect of stress classification (stress-positive, stress-carrier, stress-negative) of pigs on selected properties of postmortem muscle, including protein solubility and degradation of proteins such as titin. Longissimus muscle samples were removed 45 min postslaughter, divided into samples, and stored at 0 to 2 degrees C for analysis at 0, 1, 3, 5, and 7 d postmortem. Whole-muscle samples (homogenates) and purified myofibrils were prepared from each sample for analysis by SDS-PAGE. A portion of each muscle sample also was extracted 1) with a low-ionic-strength solution to obtain a sarcoplasmic protein fraction and 2) with two different high-ionic-strength solutions to obtain a myofibrillar/cytoskeletal protein fraction for measurement of protein solubility and for analysis of extracts by SDS-PAGE. No significant differences were observed between muscle from stress-negative and stress-carrier animals in this study. Sarcoplasmic (P less than .05) and myofibrillar/cytoskeletal (P less than .01) protein solubility was lower in muscle samples from stress-positive animals than in muscle samples from stress-carrier and stress-negative animals at all postmortem times studied. The high molecular weight protein titin was degraded more slowly postmortem in muscle from stress-positive than in muscle from stress-negative animals, as observed by SDS-PAGE analysis of whole-muscle samples (homogenates) an myofibrils. The combination of lowered protein solubility and reduced rate of postmortem degradation of structural proteins such as titin may explain, at least in part, the reduced quality and protein functionality of muscle from stress-positive pigs.

Animals

Studies of the alpha-actinin/actin interaction in the Z-disk by using calpain.

Both mu- and m-calpain (the micro- and millimolar Ca(2+)-requiring Ca(2+)-dependent proteinases) can completely remove Z-disks from skeletal muscle myofibrils and leave a space devoid of filaments in the Z-disk area. alpha-Actinin, a principal protein component of Z-disks, is removed from myofibrils by the calpains, and a 100-kDa polypeptide that comigrates in sodium dodecyl sulfate-polyacrylamide gel electrophoresis with the alpha-actinin subunit is released into the supernatant. Purified calpain does not degrade purified actin or purified alpha-actinin as indicated by sodium dodecyl sulfate-polyacrylamide gel electrophoresis and by N- and C-terminal amino acid analysis of calpain-treated and untreated alpha-actinin and actin. The 100-kDa polypeptide released from myofibrils by calpain elutes identically with native alpha-actinin off DEAE-cellulose and hydroxyapatite columns and, after purification, binds to pure F-actin in the same manner that untreated, native alpha-actinin binds. Calpain-released alpha-actinin also accelerates the rate of superprecipitation of reconstituted actomyosin, a sensitive property characteristic of native alpha-actinin. Consequently, the calpains release alpha-actinin from the Z-disk of myofibrils without degrading it or without altering its ability to bind to actin. These results indicate that alpha-actinin does not simply cross-link thin filaments across the Z-disk but that at least one additional protein (or perhaps an altered actin or alpha-actinin) is involved in the alpha-actinin/actin interaction in Z-disks.

Actinin

Determination of the critical concentration required for desmin assembly.

The critical concentration required for filament assembly in vitro from highly purified desmin was determined by both turbidity and centrifugation assays. Assembly was done in the presence of 2 mM-Ca2+, 2 mM-Mg2+ or 150 mM-Na+ at 2, 22 and 37 degrees C. Similar values for critical concentration were obtained by both assays. As temperature increased, critical concentration decreased for each cation. The critical concentration was lowest in the presence of Ca2+ at 2, 22 and 37 degrees C, but was highest in the presence of 150 mM-Na+ at 2 degrees C. Negative staining showed that supernatants from the centrifugation assays contained protofilaments, protofibrils and short particles (less than 300 nm), but pellets contained long filaments (greater than 1 micron) with an average diameter of 10 nm. As the temperature increased, both the average diameter and average length of particles in the supernatant increased. Thermodynamic analysis indicated that hydrophobic interactions were dominant during desmin assembly, but that ionic interactions might also be involved. Our results demonstrated that the specific cation and temperature and temperature-cation interactions all are important in assembly of desmin intermediate filaments.

Actin Cytoskeleton

Intermediate filaments.

It is likely that future studies involving a molecular biology approach, similar to those described in [7,27,28], will yield fruitful information regarding properties and cellular roles of IF. At this point, our knowledge of the properties and expression of IF remains in stark contrast to our lack of understanding of their biological functions. As pointed out by Franke et al. [29], several lines of investigation have suggested that IF do not serve a general cellular function (i.e. 'housekeeping duties'). Instead, the roles of IF and their constituent proteins are probably related to specific functions of the differentiated cell. Our search for these specific roles will be difficult, but exciting. In the meantime, it is rewarding that IF typing of cells and tumors has already yielded practical information useful in histology and cytology [30].

Animals

Polarity and length of actin filaments at the fascia adherens of the cardiac intercalated disk.

Digestion of canine and bovine intercalated disks with a calcium-activated protease (CAF) removes the electron-dense material similar to that found at the Z-line and presumably consisting primarily of alpha-actinin. The major filaments exposed by CAF are actin, and the polarity is away from the intercalated disk, as was confirmed by decoration with heavy meromyosin. The length of actin filaments associated with the fascia adherens region at the concave region is 1.2- to 2.2-fold that of actin filaments (I-filaments) in the sarcomere and varies depending on the interdigitation of the membrane at the cell junction. Actin filaments at the intercalated disk seem to be attached (or very close) to the membrane in a direct, rather than looping, manner.

Actins

Effect of cations and temperature on kinetics of desmin assembly.

Smooth-muscle desmin, which was isolated from avian gizzard, was purified and used to form reconstituted intermediate filaments. Filament assembly was done in the presence of physiological cations, Ca2+, Mg2+, Na+, and Na+ plus Mg2+, and with non-physiological cations Cu2+ and Ni2+. Assembly was done at 2 degrees, 22 degrees and 37 degrees C, and was monitored by absorbance and by electron microscopy. Absorbance increased most rapidly during the first 2-5 min and then increased at a slower rate with the physiological cations, but decreased after that time with the non-physiological cations. For each physiological cation, absorbance increased with increasing temperature. This was particularly evident with Ca2+, which produced the lowest absorbance at 2 degrees C and the highest at 37 degrees C. When ionic strength was comparable, filament-forming buffers that contained bivalent cations were associated with higher absorbance values. Filament diameters were significantly smaller 60 min after assembly initiation than after 5 min. Average filament diameters, when formed in the presence of Cu2+ or Ni2+, were 10% greater than in the presence of the physiological cations and did not show a consistent tendency to decrease as time increased. These results demonstrate the importance, not only of the pH and ionic composition of the filament-forming buffer, but also of the temperature and duration of dialysis for reconstitution of desmin filaments.

Animals

Composition of intermediate filament subunit proteins in embryonic, neonatal and postnatal porcine skeletal muscle.

The intermediate (10-nm) filament subunit proteins (desmin and vimentin) in samples obtained from embryonic, neonatal, and postnatal porcine skeletal muscle were examined by two-dimensional electrophoresis (isoelectric focusing/sodium dodecylsulfate polyacrylamide gel electrophoresis). The skeletal muscle samples were taken from pig embryos at 45, 73 and 102 d of gestation; from neonatal pigs and from postnatal pigs at 1, 6 and 30 mo of age. Three fractions (namely, whole homogenized muscle, purified myofibrils and myofibrillar-protein-extracted residues) were prepared from each skeletal muscle sample for analysis. Vimentin was the major (approximately 75% vimentin: 25% desmin) 10-nm filament protein present in skeletal muscle samples obtained from the 45-d-old pig embryos. The relative proportion of vimentin decreased progressively during embryogenesis. At birth, the vimentin comprised approximately 15%, and desmin, 85%, of the 10-nm filament protein. The proportional amount of vimentin continued to decline postnatally, with the 10-nm filament protein of samples from the 30-mo-old animals consisting of less than approximately 5% vimentin and over 95% desmin. These results show a developmental stage-dependent pattern in the expression of vimentin and desmin intermediate filament subunit proteins in mammalian skeletal muscle. In the adult mammal, desmin is the significant 10-nm filament protein present.

Animals

Fine structure of wide and narrow vertebrate muscle Z-lines. A proposed model and computer simulation of Z-line architecture.

A model of the structure of vertebrate Z-lines and Z-line analogs is introduced and supported by evidence from electron microscope studies of wide Z-lines (rat and feline soleus, and feline and canine cardiac muscles), narrow Z-lines (guppy, newt and frog skeletal muscles), and Z-rods (from a patient with nemaline myopathy and from cardiac muscles of aged dog). The model is based on a pair of Z-filaments (termed a Z-unit), which are linked near their centers at a 90 degrees angle and form bridges between neighboring antipolar thin (actin) filaments. A square lattice of four Z-filament pairs (the basic structure of the Z-line, termed a Z-line unit) defines the geometrical position of the I-square unit. In this native state of the Z-line, small square and large square net forms appear in cross-section. Other cross-sectional patterns of Z-lines, including basket-weave and diagonal-square net patterns, can be explained by detachment of the Z-filament from the Z-filament binding region within each Z-filament pair due to chemical or physical stress. Dissection of Z-lines and Z-line analogs with calcium-activated neutral protease provides evidence that the width of all wide Z-line structures is determined by the amount of overlap of antipolar thin filaments from adjacent sarcomeres. Longitudinal patterns of narrow and wide Z-lines are shown and described in relation to the model. To test the proposed model, the dynamics of the Z-line unit structure were computer-simulated. An attempt was made to correlate longitudinal (z direction) and cross-sectional (x and y directions) patterns and to determine the amount of movement of thin or Z-filaments that is required to explain the diversity observed in cross-sectional patterns of Z-lines. The computer simulations demonstrated that the structural transitions among the small square, and therefore large square net, as well as basket-weave and diagonal-square net forms seen in cross-sections could be caused by movements of thin filaments less than 10 nm in any direction (x, y or z).(ABSTRACT TRUNCATED AT 400 WORDS)

Actins

Assembly of vimentin in vitro and its implications concerning the structure of intermediate filaments.

After dialysis against 10 mM-Tris-acetate (pH 8.5), vimentin that has been purified in the presence of urea is present in the form of tetrameric 2 to 3 nm X 48 nm rods known as protofilaments. These building blocks in turn polymerize into intermediate filaments (10 to 12 nm diameter) when they are dialyzed against a solution of physiological ionic strength and pH. By varying the ionic conditions under which polymerization takes place, we have identified two classes of assembly intermediates whose structures provide clues as to how an intermediate filament may be constructed. The structure of the first class, seen when assembly takes place at 10 to 20 mM-salt at pH 8.5, strongly suggests that one of the initial steps of filament assembly is the association of protofilaments into pairs with a half-unit axial stagger. Increasing the ionic strength of the assembly buffer leads to the emergence of short, full-width intermediate filaments at approximately 50 mM-salt at pH 8.5. In the presence of additional protofilaments, these short filaments elongate to many micrometers when the ionic strength and pH are further adjusted to physiological levels. The electron microscope images of the assembly intermediates suggest that vimentin-containing intermediate filaments are made up of eight protofilaments, assembled such that there is an approximately 22 nm axial stagger between neighboring protofilaments. We propose that this half-unit staggering of protofilaments is a fundamental feature of intermediate filament structure and assembly, and that it could account for the 20 to 22 nm axial repeat seen in all intermediate filaments examined so far.

Animals

Interaction of alpha-actinin, filamin and tropomyosin with F-actin.

The abilities of alpha-actinin, filamin and tropomyosin to bind F-actin were examined by cosedimentation experiments. Results indicated that smooth muscle alpha-actinin and filamin can bind to actin filaments simultaneously with little evidence of competition. In contrast, tropomyosin exhibits marked competition with either filamin or alpha-actinin for sites on actin filaments.

Actinin

Filamin-actin interaction. Dissociation of binding from gelation by Ca2+-activated proteolysis.

Chicken gizzard filamin has been digested with purified Ca2+-activated protease. The subunits of (Mr = 250,000) of the protein are cleaved asymmetrically into two fragments, heavy merofilamin, Mr = 240,000, and light merofilamin, Mr = 9,500. Digestion is complete at substrate to enzyme ratios of 100:1 and requires Ca2+ concentrations in excess of 0.3 mM. Heavy merofilamin binds to F-actin as evidenced by cosedimentation with F-actin, by direct observation under the electron microscope, and by its ability to inhibit actin activation of heavy meromyosin ATPase. Heavy merofilamin does not form a gel when mixed with actin, except at very low concentrations of KCl. Thus, actin binding and gelation are separable activities of filamin. We speculate that Ca2+-stimulated proteolysis may play a role in the regulation of actin-filamin interactions.

Actins

Laser Raman light-scattering observations of conformational changes in myosin induced by inorganic salts.

The Raman spectra of aqueous solutions of myosin and mixtures of myosin in solutions of the salts CaCl(2), MgCl(2), and LiBr have been taken. The spectrum of the solvent background has been subtracted by means of a computer, leaving only the Raman peaks of the protein. From an analysis of the Raman bands in the regions at 900, 940, 1,240-1,300, and 1,650-1,670 cm(-1), it seems likely that CaCl(2) effects an alpha-to beta-transition in myosin, probably owing to the interaction of the Ca(2+) ion, LiBr appears to denature the protein leading to increased random coil structure, and MgCl(2) appears to have an effect intermediate between the two other salts. These results are reported for concentrations as low as 10(-5) M of CaCl(2) and MgCl(2).This investigation indicates the usefulness of the Raman light-scattering technique for the study of protein conformational changes.

Calcium Chloride